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首页> 外文期刊>Multimedia Tools and Applications >Estimation Of Behavioral User State Based On Eye Gaze And Head Pose-application In An E-learning Environment
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Estimation Of Behavioral User State Based On Eye Gaze And Head Pose-application In An E-learning Environment

机译:在线学习环境中基于眼睛注视和头部姿势应用的行为用户状态估计

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摘要

Most e-learning environments which utilize user feedback or profiles, collect such information based on questionnaires, resulting very often in incomplete answers, and sometimes deliberate misleading input. In this work, we present a mechanism which compiles feedback related to the behavioral state of the user (e.g. level of interest) in the context of reading an electronic document; this is achieved using a non-intrusive scheme, which uses a simple web camera to detect and track the head, eye and hand movements and provides an estimation of the level of interest and engagement with the use of a neuro-fuzzy network initialized from evidence from the idea of Theory of Mind and trained from expert-annotated data. The user does not need to interact with the proposed system, and can act as if she was not monitored at all. The proposed scheme is tested in an e-learning environment, in order to adapt the presentation of the content to the user profile and current behavioral state. Experiments show that the proposed system detects reading- and attention-related user states very effectively, in a testbed where children's reading performance is tracked.
机译:大多数利用用户反馈或配置文件的电子学习环境都基于问卷收集此类信息,从而常常导致答案不完整,有时还会故意误导输入。在这项工作中,我们提出了一种机制,该机制可以在阅读电子文档的情况下汇编与用户的行为状态(例如,兴趣级别)有关的反馈;这是通过使用非侵入式方案实现的,该方案使用简单的网络摄像头来检测和跟踪头部,眼睛和手部的运动,并使用根据证据初始化的神经模糊网络来估计感兴趣的程度和参与度从心理理论的思想和专家注释的数据训练。用户无需与建议的系统进行交互,并且可以充当完全不受监视的状态。为了使内容的呈现适应用户配置文件和当前行为状态,在电子学习环境中对提出的方案进行了测试。实验表明,该系统在跟踪儿童阅读性能的测试平台上,可以非常有效地检测与阅读和注意力相关的用户状态。

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